Abstract:
Exemplary methods, systems and components enable detection and/or monitoring and/or control of electromagnetic radiation (EMR) exposure of target body-related portions of a user operating a telecommunication device. In some embodiments a risk-assessment output is provided based on a safety threshold or predetermined intrusion level of EMR exposure. A further aspect may include interaction with external EMR sources regarding possible modification of emissions as well as possible arrangements for other types of remedial action.
Abstract:
Certain embodiments disclosed relate to compositions, including therapeutic compositions, methods, articles of manufacture, systems, and devices. Certain embodiments relate to anti-viral compositions, methods, articles of manufacture, systems and devices.
Abstract:
Certain embodiments disclosed relate to compositions, including therapeutic compositions, methods, articles of manufacture, systems, and devices. Certain embodiments relate to anti-viral compositions, methods, articles of manufacture, systems and devices.
Abstract:
Described embodiments include a system, an apparatus, and a method. A described system includes a portable power receiver configured to wirelessly receive electrical or radiant power from a wireless power transmitter source, and configured to be carried by a health care provider proximate to a first body portion of the health care provider. The system also includes a portable power-output device configured to interact with a power-receiving device connected to a handheld medical device, and configured to be carried by the health care provider proximate to a second body portion of the health care provider. If interacting, the electrical or radiant power is transferred from the portable power-output device to the power-receiving device. The system further includes a connective structure configured to transfer the electrical or radiant power between the portable power receiver and the portable power-output device.
Abstract:
Described embodiments include a system, apparatus, and method. A described system includes a power-receiving connector configured to be usable after sterilization, to releasably couple with a power-source connector, and configured to be carried by a health care provider proximate to a first body portion. If coupled, the power-receiving connector is operable to receive an electrical or radiant power from the power-source connector. The system also includes a power-output device configured to be usable after sterilization, to interact with a power-receiving device connected to a handheld medical device, and configured to be carried by the health care provider proximate to a second body portion. If interacting, the received electrical or radiant power is transferred from the power-output device to the power-receiving device. The system further includes a wearable connective structure configured to be usable after sterilization, and to transfer the received electrical or radiant power from the power-receiving connector to the power-output device.
Abstract:
Described embodiments include a system, an apparatus, and a method. A described system includes a power receiver configured to wirelessly receive a first power from a wireless power transmitter source, and configured to be carried by a health care provider. The system also includes an energy storage device configured to store energy derived from the first power, to supply a second power, and configured to be carried by the health care provider. The system further includes a power-output device configured to interact with a power-receiving device connected to a handheld medical device, and configured to be carried by the health care provider proximate. If interacting, a third power is transferred from the power-output device to the power-receiving device. The system also includes a first connective structure configured to transfer the first power between the portable power receiver and the energy storage device, and configured to be carried by the health care provider.
Abstract:
A system for delivering optical power over an optical conduit includes at least one than one optical power source delivering multiple optical power forms at least partially over a free space.
Abstract:
Systems and methods are described for configuring several modules each individually small enough to pass through a digestive tract; and a tether or other means for releasably configuring at least the several modules in a group. Such a tether may (directly or indirectly) couple some of the modules via at least a gap in another module from which the tether may slip free, in some embodiments. Such methods may include modes of administering a medication or otherwise taking an action in response to the one or more phenomena.
Abstract:
Systems, methods, and other modalities are described for (a) obtaining an indication relating to an emission module (which may be dangerous, e.g.) or its user (who may be untrained, e.g.) and for (b) configuring the module or causing an irradiation (for imaging, e.g.) in response to the indication.
Abstract:
A smart link in a power delivery system includes an insulator, which electrically isolates a power line, and a switchable conductance placed in parallel with the insulator. The switchable conductance includes switchgear for sourcing, sinking, and/or dispatching real and/or reactive power on the power line to dynamically in response to dynamic loading, transient voltages and/or currents, and phase conditions or other conditions on the power line.